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与大肠杆菌DNA腺嘌呤甲基转移酶结合的S-腺苷-L-高半胱氨酸的两种不同构象以及构象变化在调节催化循环中的意义。

Two alternative conformations of S-adenosyl-L-homocysteine bound to Escherichia coli DNA adenine methyltransferase and the implication of conformational changes in regulating the catalytic cycle.

作者信息

Liebert Kirsten, Horton John R, Chahar Sanjay, Orwick Marcella, Cheng Xiaodong, Jeltsch Albert

机构信息

Biochemistry Laboratory, School of Engineering and Science, Jacobs University Bremen, 28759 Bremen, Germany.

出版信息

J Biol Chem. 2007 Aug 3;282(31):22848-55. doi: 10.1074/jbc.M700926200. Epub 2007 May 31.

DOI:10.1074/jbc.M700926200
PMID:17545164
Abstract

The crystal structure of the Escherichia coli DNA adenine methyltransferase (EcoDam) in a binary complex with the cofactor product S-adenosyl-L-homocysteine (AdoHcy) unexpectedly showed the bound AdoHcy in two alternative conformations, extended or folded. The extended conformation represents the catalytically competent conformation, identical to that of EcoDam-DNA-AdoHcy ternary complex. The folded conformation prevents catalysis, because the homocysteine moiety occupies the target Ade binding pocket. The largest difference between the binary and ternary structures is in the conformation of the N-terminal hexapeptide ((9)KWAGGK(14)). Cofactor binding leads to a strong change in the fluorescence of Trp(10), whose indole ring approaches the cofactor by 3.3A(.) Stopped-flow kinetics and AdoMet cross-linking studies indicate that the cofactor prefers binding to the enzyme after preincubation with DNA. In the presence of DNA, AdoMet binding is approximately 2-fold stronger than AdoHcy binding. In the binary complex the side chain of Lys(14) is disordered, whereas Lys(14) stabilizes the active site in the ternary complex. Fluorescence stopped-flow experiments indicate that Lys(14) is important for EcoDam binding of the extrahelical target base into the active site pocket. This suggests that the hexapeptide couples specific DNA binding (Lys(9)), AdoMet binding (Trp(10)), and insertion of the flipped target base into the active site pocket (Lys(14)).

摘要

大肠杆菌DNA腺嘌呤甲基转移酶(EcoDam)与辅因子产物S-腺苷-L-高半胱氨酸(AdoHcy)形成的二元复合物的晶体结构意外地显示,结合的AdoHcy存在两种不同构象,即伸展型或折叠型。伸展型构象代表具有催化活性的构象,与EcoDam-DNA-AdoHcy三元复合物的构象相同。折叠型构象会阻止催化作用,因为高半胱氨酸部分占据了目标腺嘌呤(Ade)结合口袋。二元结构和三元结构之间最大的差异在于N端六肽((9)KWAGGK(14))的构象。辅因子结合导致色氨酸(Trp(10))荧光发生强烈变化,其吲哚环与辅因子的距离拉近了3.3埃。停流动力学和AdoMet交联研究表明,辅因子在与DNA预孵育后更倾向于与酶结合。在有DNA存在的情况下,AdoMet的结合力比AdoHcy的结合力强约2倍。在二元复合物中,赖氨酸(Lys(14))的侧链无序,而在三元复合物中Lys(14)可稳定活性位点。荧光停流实验表明,Lys(14)对于EcoDam将螺旋外目标碱基结合到活性位点口袋中很重要。这表明该六肽将特异性DNA结合(Lys(9))、AdoMet结合(Trp(10))以及翻转的目标碱基插入活性位点口袋(Lys(

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